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采用集成化和人源化的多组织器官芯片平台探究前药代谢和相互毒性。

Probing prodrug metabolism and reciprocal toxicity with an integrated and humanized multi-tissue organ-on-a-chip platform.

机构信息

Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Medical Center Boulevard, Winston-Salem, NC 27157, USA; Virginia Tech -Wake Forest School of Biomedical Engineering and Sciences, Wake Forest School of Medicine, Medical Center Boulevard, Winston-Salem, NC 27157, USA.

Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Medical Center Boulevard, Winston-Salem, NC 27157, USA.

出版信息

Acta Biomater. 2020 Apr 1;106:124-135. doi: 10.1016/j.actbio.2020.02.015. Epub 2020 Feb 14.

Abstract

Current drug development techniques are expensive and inefficient, partially due to the use of preclinical models that do not accurately recapitulate in vivo drug efficacy and cytotoxicity. To address this challenge, we report on an integrated, in vitro multi-organoid system that enables parallel assessment of drug efficiency and toxicity on multiple 3D tissue organoids. Built in a low-cost, adhesive film-based microfluidic device, these miniaturized structures require less than 200 µL fluid volume and are amenable to both matrix-based 3D cell culture and spheroid aggregate integration, each supported with an in situ photocrosslinkable hyaluronic acid hydrogel. Here, we demonstrate this technology first with a three-organoid device consisting of liver, cardiac, and lung constructs. We show that these multiple tissue types can be kept in common circulation with high viability for 21 days and validate the platform by investigating liver metabolism of the prodrug capecitabine into 5-fluorouracil (5-FU) and observing downstream toxicity in lung and cardiac organoids. Then we expand the integrated system to accommodate six humanized constructs, including liver, cardiac, lung, endothelium, brain, and testes organoids. Following a 14-day incubation in common media, we demonstrate multi-tissue interactions by metabolizing the alkylating prodrug ifosfamide in the liver organoid to produce chloroacetaldehyde and induce downstream neurotoxicity. Our results establish an expandable, multi-organoid body-on-a-chip system that can be fabricated easily and used for the accurate characterization of drug interactions in vitro. STATEMENT OF SIGNIFICANCE: The use of 3-dimensional (3D) in vitro models in drug development has advanced over the past decade. However, with several exceptions, the majority of research studies using 3D in vitro models, such as organoids, employ single tissue types, in isolated environments with no "communication" between different tissues. This is a significant limiting factor because in the human body there is significant signaling between different cells, tissues, and organs. Here we employ a low-cost, adhesive film-based microfluidic device approach, paired with a versatile extracellular matrix-derived hyaluronic acid hydrogel to support integrated systems of 3 and 6 3D organoid and cell constructs. Moreover, we demonstrate an integrated response to drugs, in which downstream toxicity is dependent on the presence of liver organoids.

摘要

当前的药物开发技术既昂贵又低效,部分原因是使用了不能准确重现体内药物疗效和细胞毒性的临床前模型。为了解决这一挑战,我们报告了一种集成的体外多器官系统,该系统能够平行评估多种 3D 组织类器官上的药物效率和毒性。该系统构建在低成本、粘性薄膜基微流控装置上,需要的流体体积小于 200µL,并且适用于基于基质的 3D 细胞培养和球体聚集物的集成,每个系统都支持原位光交联透明质酸水凝胶。在这里,我们首先使用由肝脏、心脏和肺构建体组成的三器官装置展示了这项技术。我们表明,这些多种组织类型可以在高存活率下共同循环 21 天,并通过研究前药卡培他滨在肝脏中的代谢产物 5-氟尿嘧啶(5-FU)以及观察肺和心脏类器官中的下游毒性来验证该平台。然后,我们将集成系统扩展到容纳六个人类化构建体,包括肝脏、心脏、肺、内皮、大脑和睾丸类器官。在共同培养基中孵育 14 天后,我们通过在肝脏类器官中代谢烷化前药异环磷酰胺来产生氯乙醛,并诱导下游神经毒性,证明了多组织相互作用。我们的结果建立了一个可扩展的多器官芯片系统,该系统易于制造,可用于准确表征体外药物相互作用。

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